Related Experiment Video
Updated: May 6, 2026

Quantification of Colonic Stem Cell Mutations
Published on: September 25, 2015
Glucose-6-phosphate dehydrogenase (G6PD)-deficient epithelial cells are less tolerant to infection by Staphylococcus
Yi-Ting Hsieh1, Mei-Hui Lin, Hung-Yao Ho
1Department of Medical Biotechnology and Laboratory Science, College of Medicine, Chang Gung University, Taoyuan, Taiwan.
Insights
Bacterial infection reduces cell viability in glucose-6-phosphate dehydrogenase (G6PD) deficient cells by increasing reactive oxygen species (ROS) and apoptosis. This highlights a vulnerability in G6PD deficiency during bacterial infections.
Area of Science:
- Biochemistry
- Cell Biology
- Immunology
Background:
- Glucose-6-phosphate dehydrogenase (G6PD) is crucial for cellular redox balance.
- G6PD deficiency can lead to neonatal jaundice and hemolytic anemia.
- The impact of bacterial infections on G6PD-deficient cells is not well understood.
Purpose of the Study:
- To investigate the effects of bacterial infection on G6PD-deficient cells.
- To elucidate the mechanisms underlying cellular responses to bacterial pathogens in G6PD deficiency.
Main Methods:
- Utilized G6PD knockdown A549 lung carcinoma cells and Staphylococcus aureus.
- Assessed cell viability using MTT assay.
- Measured intracellular reactive oxygen species (ROS) via DCF intensity and flow cytometry.
- Quantified apoptosis using Annexin V/PI staining and confocal microscopy.
- Analyzed caspase-9 and caspase-3 expression via Western blotting.
Main Results:
- G6PD-deficient cells exhibited significantly lower viability post-bacterial infection compared to controls.
- Increased intracellular ROS accumulation was observed in infected G6PD-deficient cells.
- Enhanced apoptotic activity, indicated by Annexin V/PI staining, was detected.
- Elevated expression of caspase-9 and caspase-3 was confirmed in G6PD-deficient cells.
Conclusions:
- Bacterial infection, potentially via S. aureus α-hemolysin, increases intracellular ROS in G6PD-deficient cells.
- Elevated ROS triggers enhanced apoptosis through the intrinsic pathway.
- This process reduces cell viability in G6PD-deficient cells during bacterial infection.
Abstract:
Glucose-6-phosphate dehydrogenase (G6PD) is a key enzyme in the pentose phosphate pathway and provides reducing energy to all cells by maintaining redox balance. The most common clinical manifestations in patients with G6PD deficiency are neonatal jaundice and acute hemolytic anemia. The effects of microbial infection in patients with G6PD deficiency primarily relate to the hemolytic anemia caused by Plasmodium or viral infections and the subsequent medication that is required. We are interested in studying the impact of bacterial infection in G6PD-deficient cells. G6PD knock down A549 lung carcinoma cells, together with the common pathogen Staphylococcus aureus, were employed in our cell infection model. Here, we demonstrate that a lower cell viability was observed among G6PD-deficient cells when compared to scramble controls upon bacterial infection using the MTT assay. A significant increase in the intracellular ROS was detected among S. aureus-infected G6PD-deficient cells by observing dichlorofluorescein (DCF) intensity within cells under a fluorescence microscope and quantifying this signal using flow cytometry. The impairment of ROS removal is predicted to enhance apoptotic activity in G6PD-deficient cells, and this enhanced apoptosis was observed by annexin V/PI staining under a confocal fluorescence microscope and quantified by flow cytometry. A higher expression level of the intrinsic apoptotic initiator caspase-9, as well as the downstream effector caspase-3, was detected by Western blotting analysis of G6PD-deficient cells following bacterial infection. In conclusion, we propose that bacterial infection, perhaps the secreted S. aureus α-hemolysin in this case, promotes the accumulation of intracellular ROS in G6PD-deficient cells. This would trigger a stronger apoptotic activity through the intrinsic pathway thereby reducing cell viability when compared to wild type cells.
More Related Videos
Related Concept Videos
Glucose Transporters
Facilitated diffusion-glucose transporters (GLUTs) are encoded by the solute-linked carrier (SLC) family 2, subfamily A gene family, or SLC2A. The 14 GLUT protein members are distributed into three classes:
Other Glycolytic Pathways
Staphylococcal Skin Infections
Glycolysis: Preparatory Phase
GPCRs Regulate Adenylyl Cylase Activity
Glucose Absorption Into the Small Intestine

